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I wrote a rotate function, but I'm not satisfied with it:

var pixels=['011','110','000'];
var result=new Array();
result=['000','000','000'];
var r = {x:1,y:1}; //rotating point
var clock = true; //clock or counter-clock rotation


for ( y=0; y<(pixels.length); y++ ){
  for ( x=0; x<(pixels.length); x++ ){
    var newx=0,newy=0;
    if ( clock ){
      if ( x< r.x && y< r.y ) {newx=x+2;newy=y  ;}//top left
      if ( x==r.x && y< r.y ) {newx=x+1;newy=y+1;}//top
      if ( x> r.x && y< r.y ) {newx=x  ;newy=y+2;}//top right
      if ( x< r.x && y==r.y ) {newx=x+1;newy=y-1;}//left
      if ( x==r.x && y==r.y ) {newx=x  ;newy=y  ;}//center
      if ( x> r.x && y==r.y ) {newx=x-1;newy=y+1;}//right
      if ( x< r.x && y> r.y ) {newx=x  ;newy=y-2;}//bottom left
      if ( x==r.x && y> r.y ) {newx=x-1;newy=y-1;}//bottom
      if ( x> r.x && y> r.y ) {newx=x-2;newy=y  ;}//bottom right
    } else {
      if ( x< r.x && y< r.y ) {newx=x  ;newy=y+2;}//top left
      if ( x==r.x && y< r.y ) {newx=x-1;newy=y+1;}//top
      if ( x> r.x && y< r.y ) {newx=x-2;newy=y  ;}//top right
      if ( x< r.x && y==r.y ) {newx=x+1;newy=y+1;}//left
      if ( x==r.x && y==r.y ) {newx=x  ;newy=y  ;}//center
      if ( x> r.x && y==r.y ) {newx=x-1;newy=y-1;}//right
      if ( x< r.x && y> r.y ) {newx=x+2;newy=y  ;}//bottom left
      if ( x==r.x && y> r.y ) {newx=x+1;newy=y-1;}//bottom
      if ( x> r.x && y> r.y ) {newx=x  ;newy=y-2;}//bottom right
    }
    //inject(result,newx,newy,pixels[y][x])
  }
}

does someone now how to write a cleaner code for this rotate (clock and counter-clock) function ?

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Is the r variable the same thing as result? If not, it's undefined. –  James Kolpack Apr 4 '10 at 17:29
    
thank you for the comment, I forgot to mention r was the pivot point (it's now corrected) –  ideotop Apr 4 '10 at 17:39

1 Answer 1

You could try the suggestions in http://stackoverflow.com/questions/646468/how-to-rotate-a-2d-array-of-integers but then you would probably have to use an array of arrays, instead of an array of strings (which might make more sense anyway).

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